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Published on: April 7, 2015
The Self-Identity Protein IdsD Is Communicated between Cells in Swarming Proteus mirabilis Colonies
Christina C Saak1, Karine A Gibbs2
1Department of Molecular and Cellular Biology, Harvard University, Cambridge, Massachusetts, USA.
Abstract:
Proteus mirabilis is a social bacterium that is capable of self (kin) versus nonself recognition. Swarming colonies of this bacterium expand outward on surfaces to centimeter-scale distances due to the collective motility of individual cells. Colonies of genetically distinct populations remain separate, while those of identical populations merge. Ids proteins are essential for this recognition behavior. Two of these proteins, IdsD and IdsE, encode identity information for each strain. These two proteins bind in vitro in an allele-restrictive manner. IdsD-IdsE binding is correlated with the merging of populations, whereas a lack of binding is correlated with the separation of populations. Key questions remained about the in vivo interactions of IdsD and IdsE, specifically, whether IdsD and IdsE bind within single cells or whether IdsD-IdsE interactions occur across neighboring cells and, if so, which of the two proteins is exchanged. Here we demonstrate that IdsD must originate from another cell to communicate identity and that this nonresident IdsD interacts with IdsE resident in the recipient cell. Furthermore, we show that unbound IdsD in recipient cells does not cause cell death and instead appears to contribute to a restriction in the expansion radius of the swarming colony. We conclude that P. mirabilis communicates IdsD between neighboring cells for nonlethal kin recognition, which suggests that the Ids proteins constitute a type of cell-cell communication.
Importance:
We demonstrate that self (kin) versus nonself recognition in P. mirabilis entails the cell-cell communication of an identity-encoding protein that is exported from one cell and received by another. We further show that this intercellular exchange affects swarm colony expansion in a nonlethal manner, which adds social communication to the list of potential swarm-related regulatory factors.
Insights
Proteus mirabilis bacteria use the IdsD protein for kin recognition. This protein is exchanged between neighboring cells, enabling nonlethal communication and influencing swarm colony expansion.
Area of Science:
- Microbiology
- Bacterial Social Behavior
- Cell-cell communication
Background:
- Proteus mirabilis exhibits self (kin) versus nonself recognition.
- Swarming colonies expand via collective motility, with genetically distinct populations remaining separate and identical populations merging.
- Ids proteins, specifically IdsD and IdsE, are crucial for this recognition, encoding strain identity.
Purpose of the Study:
- To elucidate the in vivo interactions of IdsD and IdsE proteins in Proteus mirabilis.
- To determine if IdsD-IdsE binding occurs within single cells or between neighboring cells.
- To identify which Ids protein is exchanged between cells during recognition.
Main Methods:
- Investigated the in vivo interactions of IdsD and IdsE proteins.
- Determined the origin and destination of Ids proteins during cell-cell communication.
- Assessed the impact of unbound IdsD on recipient cells and colony expansion.
Main Results:
- IdsD protein must originate from another cell to communicate identity.
- Nonresident IdsD interacts with resident IdsE in the recipient cell.
- Unbound IdsD in recipient cells does not cause cell death but restricts swarm colony expansion radius.
Conclusions:
- Proteus mirabilis communicates via cell-cell exchange of IdsD for nonlethal kin recognition.
- Ids proteins facilitate a form of intercellular communication in bacteria.
- This intercellular exchange influences swarm colony dynamics and adds social communication to regulatory factors.
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